AU2011303956A1 - Managed pressure drilling apparatus - Google Patents
Managed pressure drilling apparatus Download PDFInfo
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- AU2011303956A1 AU2011303956A1 AU2011303956A AU2011303956A AU2011303956A1 AU 2011303956 A1 AU2011303956 A1 AU 2011303956A1 AU 2011303956 A AU2011303956 A AU 2011303956A AU 2011303956 A AU2011303956 A AU 2011303956A AU 2011303956 A1 AU2011303956 A1 AU 2011303956A1
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- Australia
- Prior art keywords
- fluid
- valve
- drilling system
- flow
- return line
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Classifications
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B21/00—Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
- E21B21/08—Controlling or monitoring pressure or flow of drilling fluid, e.g. automatic filling of boreholes, automatic control of bottom pressure
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B21/00—Methods or apparatus for flushing boreholes, e.g. by use of exhaust air from motor
- E21B21/10—Valve arrangements in drilling-fluid circulation systems
- E21B21/106—Valve arrangements outside the borehole, e.g. kelly valves
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B47/00—Survey of boreholes or wells
- E21B47/10—Locating fluid leaks, intrusions or movements
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B2200/00—Special features related to earth drilling for obtaining oil, gas or water
- E21B2200/04—Ball valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B15/00—Fluid-actuated devices for displacing a member from one position to another; Gearing associated therewith
- F15B15/02—Mechanical layout characterised by the means for converting the movement of the fluid-actuated element into movement of the finally-operated member
- F15B15/06—Mechanical layout characterised by the means for converting the movement of the fluid-actuated element into movement of the finally-operated member for mechanically converting rectilinear movement into non- rectilinear movement
- F15B15/065—Mechanical layout characterised by the means for converting the movement of the fluid-actuated element into movement of the finally-operated member for mechanically converting rectilinear movement into non- rectilinear movement the motor being of the rack-and-pinion type
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- Engineering & Computer Science (AREA)
- Geology (AREA)
- Life Sciences & Earth Sciences (AREA)
- Mining & Mineral Resources (AREA)
- Physics & Mathematics (AREA)
- Environmental & Geological Engineering (AREA)
- Fluid Mechanics (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Mechanical Engineering (AREA)
- Geophysics (AREA)
- Earth Drilling (AREA)
- Processing Of Stones Or Stones Resemblance Materials (AREA)
- Auxiliary Devices For Machine Tools (AREA)
Abstract
A drilling system including a drill string (12) which extends into a borehole (10), and a well closure system which contains fluid in the annular space (16) in the borehole around the drill string, the well closure system having a side bore whereby controlled flow of fluid out of the annular space in the borehole around the drill string is permitted, the side bore being connected to fluid return line (28) which extends from the side bore to a fluid reservoir (34), there being provided in the fluid return line a valve (30a) which is operable to restrict flow of fluid along the fluid return line to variable extent, and a flow meter (32) operable to measure the rate of flow of fluid along the fluid return line, the flow meter being located between the valve and the side bore, wherein a filter (40) is provided between the flow meter and the side bore, the filter including a plurality of apertures which have a smaller cross - sectional area than the smallest fluid flow lines in the flow meter.
Description
WO 2012/035001 PCT/EP2011/065834 Ref: H12483WO Title: Drilling Apparatus 5 Description of Invention The present invention relates to an apparatus for drilling a subterranean bore hole, particularly but not exclusively an oil, gas or geothermal well, using a technique known as managed pressure drilling. 10 The drilling of a borehole or well is typically carried out using a steel pipe known as a drill string with a drill bit on the lowermost end. The entire drill string may be rotated using an over-ground drilling motor, or the drill bit may be rotated independently of the drill string using a fluid powered motor or motors mounted in the drill string just above the drill bit. As drilling progresses, 15 a flow of mud is used to carry the debris created by the drilling process out of the borehole. Mud is pumped through an inlet line down the drill string to pass through the drill bit, and returns to the surface via the annular space between the outer diameter of the drill string and the borehole (generally referred to as the annulus). Mud is a very broad drilling term, and in this context it is used to 20 describe any fluid or fluid mixture used during drilling and covers a broad spectrum from air, nitrogen, misted fluids in air or nitrogen, foamed fluids with air or nitrogen, aerated or nitrified fluids to heavily weighted mixtures of oil or water with solid particles. Significant pressure is required to drive the mud along this flow path, and to achieve this, the mud is typically pumped into the 25 drill string using one or more positive displacement pumps which are connected to the drill string via a pipe and manifold known as the standpipe manifold.
WO 2012/035001 PCT/EP2011/065834 2 The geological formations into which such boreholes are typically drilled often comprise a reservoir of pressurised fluid (oil, gas and/or water), and the mud flow, in addition to flushing out the debris and cooling the drill bit, pressurises the borehole, thus substantially preventing uncontrolled flow of fluid from the 5 formation into the borehole. Flow of formation fluid into the borehole is known as a kick, and, if not controlled, can lead to a blow out. Whilst pressurising the borehole is required to avoid kicks or a blow out, if the fluid pressure in the borehole is too high, the fluid pressure could cause the formation to fracture, and / or mud could penetrate and be lost to the formation. Thus, whilst the 10 pressure provided by the weight of the mud in the bore hole, and the dynamic pressure created by the pumping of the mud into the borehole may be enough to contain the fluid in the formation, for many formations greater and faster control over the fluid pressure in the borehole is required, and one drilling method suitable for drilling into such formations is managed pressure drilling 15 (MPD). Managed pressure drilling (MPD) involves controlling the bottom hole pressure by the application of a back-pressure to mud exiting from the annulus of the borehole. The most relevant elements of a conventional prior art managed pressure drilling system are illustrated schematically in Figure 1. This figure 20 shows a borehole 10' which extends into a geological formation 11' comprising a reservoir of fluid such as oil, gas or water. A drill string 12' extends down into the bore hole 12'. At the lowermost end of the drill string 12' there is a bottom hole assembly (BHA) 14' comprising a drill bit, a mud motor, various sensors, and telecommunications equipment for transmitting readings from the 25 sensors to surface monitoring and control equipment. The uppermost end of the drill string 12' extends to a drilling rig (not shown for clarity). The borehole 10' is capped with a well head 18', and a closure device 20' such as a rotating blow out preventer (BOP) or rotating control device (RCD). The drill string 12' extends through the well head 18 and closure device 20', the WO 2012/035001 PCT/EP2011/065834 3 closure device 20' having seals which close around the exterior of the drill string 12' to provide a substantially fluid tight seal around the drill string 12' whilst allowing the drill string to rotate about its longitudinal axis, and to be reciprocated into and out of the borehole 10'. Together, the well head 18' and 5 closure device 20' isolate the fluid in the annulus 16'. In this example, the drill string 12' extends from the closure device 20' to a driving apparatus 22' such as a top drive, and the uppermost end of the drill string 12' is connected to the outlet port of a standpipe manifold 24' which has an inlet port connected by an inlet line to a mud pump 26'. The well head 18' 10 includes a side port 18a' which is connected to an annulus return line 28', and which provides an outlet for fluid from the annulus 16'. The annulus return line 28' extends to a mud reservoir 34' via an adjustable choke or valve 30' and a Coriolis flow meter 32' which is downstream of the choke / valve 30'. Filters and / or shakers (not shown) are generally provided to remove particulate 15 matter such as drill cuttings from the mud prior to its return to the mud reservoir 34'. During drilling, the top drive 22' rotates the drill string 12' about its longitudinal axis so that the drill bit cuts into the formation, and the pump 26' is operated to pump mud from the reservoir 34' to the standpipe manifold 24' and into the drill 20 string 12' where it flows into the annulus 16' via the BHA 14'. The mud and drill cuttings flow up the annulus 16' to the well head 18', and into the annulus return line 28', and the adjustable choke or valve 32' is operated to restrict flow of this fluid along the annulus return line 28', and, therefore, to apply a back pressure is applied to the annulus 16'. This back-pressure is increased until 25 the fluid pressure at the bottom of the wellbore 10' (the bottom hole pressure) is deemed sufficient to contain the formation fluids in the formation 11' whilst minimising the risk of fracturing the formation or causing mud to penetrate the formation. The rate of flow of fluid out of the annulus 16' is monitored using WO 2012/035001 PCT/EP2011/065834 4 the flow meter 32', and compared with the rate of fluid into the drill string 12', and this data may be used to detect a kick or loss of mud to the formation. Such a system is, for example, disclosed in US 6,575, 244, and US 7,044,237. Managed pressure drilling systems in which a pump is provided to assist in the 5 development of the required bottom hole pressure by pumping mud back into the annulus 16 via the annulus return line are also known and are, for example, disclosed in US7,185719, US 7,395,878, US 2007/0151762, WO 2007/081711, and WO 2008/051978. According to a first aspect of the invention we provide a drilling system 10 including a drill string which extends into a borehole, and a well closure system which contains fluid in the annular space in the borehole around the drill string, the well closure system having a side port whereby controlled flow of fluid out of the annular space in the borehole around the drill string is permitted, the side port being connected to fluid return line which extends from the side port 15 to a fluid reservoir, there being provided in the fluid return line a valve which is operable to restrict flow of fluid along the fluid return line to variable extent, and a flow meter operable to measure the rate of flow of fluid along the fluid return line, the flow meter being located between the valve and the side port, wherein a filter is provided between the flow meter and the side port, the filter 20 including a plurality of apertures which have a smaller cross-sectional area than the smallest fluid flow lines in the flow meter. Preferably the flow meter is a Coriolis flow meter. The flow meter may be located in a branch line off the fluid return line which extends between a first portion of the fluid return line and a second portion of 25 the fluid return line, the first portion being located between the side port and the second portion. In this case, preferably the filter is located at or adjacent to the junction between the branch line and the first portion of the fluid return line. The filter may have an edge or edges which are located at the junction WO 2012/035001 PCT/EP2011/065834 5 between the branch line and the first portion of the fluid return line, and a central portion which extends into the branch line. Preferably an active sonar flow meter is provided to measure the rate of fluid flow along the fluid return line. In this case, the active sonar flow meter is 5 preferably located between the side port and the Coriolis flow meter. The active sonar flow meter may be a clamp-on meter. Advantageously, an inlet line extends into the drill string from a pump, and a second active sonar flow meter is provided to measure the rate of fluid flow along the inlet line. In this case, the second active sonar flow meter is 10 preferable a clamp-on meter. According to a second aspect of the invention we provide a drilling system including a drill string which extends into a borehole, and a well closure system which contains fluid in the annular space in the borehole around the drill string, the well closure system having a side port whereby controlled flow of fluid out 15 of the annular space in the borehole around the drill string is permitted, the side port being connected to fluid return line which extends from the side port to a fluid reservoir, there being provided in the fluid return line a valve which includes a valve member which is rotatable to restrict flow of fluid along the fluid return line to variable extent. 20 Preferably the valve includes a valve body, the valve body having a passage with a longitudinal axis which extends from a valve inlet to a valve outlet, the passage forming part of the fluid return line, and wherein the valve member is a generally spherical ball which is mounted in the passage of the valve body. In this case, the valve member preferably includes a central passage which 25 extends through the ball and which has a longitudinal axis, the valve member being rotatable between a closed position in which the longitudinal axis of the central passage extends at around 902 to the longitudinal axis of the passage in the valve body, and an open position in which the longitudinal axis of the central passage is generally parallel to the longitudinal axis of the passage in WO 2012/035001 PCT/EP2011/065834 6 the valve body. The cross-section of the central passage perpendicular to its longitudinal axis may taper from a short side to a tall side, the height of the central passage increasing generally linearly from the short side to the tall side. 5 The ball may be arranged in the valve body such that when rotated from the closed position to the open position, the short side of the central passage is first to open into the passage of the valve body. The cross-section of the central passage perpendicular to its longitudinal axis may have the shape of a sector of a circle. 10 The valve may be provided with an actuator stem, rotation of which about its longitudinal axis causes rotation of the valve member between the open position and the closed position. In this case, the actuator stem preferably has a pinion portion with a plurality of radial teeth, and the valve is provided with at least one actuator piston with a toothed rod which engages with the pinion 15 portion of the actuator stem so that translational movement of the piston causes rotation of the actuator stem and valve member. The valve may be provided with four actuator pistons each with a toothed rod which engages with the pinion portion of the actuator stem. The or each piston may be mounted in an actuator housing and engages with 20 the actuator housing so that the actuator housing and piston enclose a control chamber, the actuator housing being provided with a conduit whereby fluid flow into the control chamber. According to a third aspect of the invention we provide a valve including a valve member and a valve body having a passage with a longitudinal axis 25 which extends from a valve inlet to a valve outlet, wherein the valve member is a generally spherical ball which is mounted in the passage of the valve body and includes a central passage which extends through the ball and which has a longitudinal axis, the valve member being rotatable between a closed position in which the longitudinal axis of the central passage extends at around WO 2012/035001 PCT/EP2011/065834 7 902 to the longitudinal axis of the passage in the valve body, and an open position in which the longitudinal axis of the central passage is generally parallel to the longitudinal axis of the passage in the valve body, wherein the cross-section of the central passage perpendicular to its longitudinal axis 5 tapers from a short side to a tall side, the height of the central passage increasing generally linearly from the short side to the tall side. According to a fourth aspect of the invention we provide a drilling system including a drill string which extends into a borehole, and a well closure system which contains fluid in the annular space in the borehole around the drill string, 10 the well closure system having a side port whereby controlled flow of fluid out of the annular space in the borehole around the drill string is permitted, the side port being connected to fluid return line which extends from the side port to a fluid reservoir, the drilling system also including a valve, the valve having an inlet port which is connected to the fluid return line, a first outlet port which 15 is connected to a gas separator apparatus for separating entrained gas from a liquid, a second outlet port which is connected to a solid separator apparatus for separating solid particles from a liquid, wherein the valve is operable to selectively permit flow of fluid from the inlet port to either the first outlet port or the second outlet port whilst never preventing flow of fluid from the inlet port to 20 both of the outlet ports. Preferably the gas separator has an outlet for liquid which is connected to an inlet of the solid separator. Preferably the solid separator has an outlet for liquid which is connected to the reservoir. 25 Advantageously, the solid separator comprises at least one shaker. An embodiment of the invention will now be described, by way of example only, with reference to the accompanying drawings of which, WO 2012/035001 PCT/EP2011/065834 8 FIGURE 1 shows a schematic illustration of a prior art managed pressure drilling system, FIGURE 2 shows a schematic illustration of a drilling system according to the invention, and 5 FIGURE 3 shows a detailed schematic illustration of the back pressure control apparatus of the drilling system shown in Figure 2, FIGURE 4 shows a detailed illustration of cross-section of the portion A of the back pressure control apparatus shown in Figure 3, FIGURE 5 shows an illustration of a cross-section through a back pressure 10 control valve of the back pressure control apparatus shown in Figure 3, FIGURE 6 shows a plan view of a cut-away section of the back pressure control valve along line X shown in Figure 5, FIGURES 7a and 7b show a cut-away section of the back pressure control valve along the line Y shown in Figure 5, with Figure 7a showing the valve in a 15 fully open position, and Figure 7b showing the valve in a partially open position. Referring now to figure 2, this shows a schematic illustration of a land-based system for drilling a subterranean borehole. It should be appreciated, however, that the invention may equally be used in relation to an off-shore 20 drilling system. This figure shows a borehole 10 which extends into a geological formation 11 comprising a reservoir of fluid such as oil, gas or water. A drill string 12 extends down into the bore hole 10. At the lowermost end of the drill string 12 there is a bottom hole assembly (BHA) 14 comprising a drill bit, a mud motor, various sensors, and telecommunications equipment 25 for transmitting readings from the sensors to surface monitoring and control WO 2012/035001 PCT/EP2011/065834 9 equipment. The uppermost end of the drill string 12 extends to a drilling rig (not shown for clarity). The borehole 10 is capped with a well head 18, and a closure device 20 such as a rotating blow out preventer (BOP) or rotating control device (RCD). The 5 drill string 12 extends through the well head 18 and closure device 20, the closure device 20 having seals closure around the exterior of the drill string 12 to provide a substantially fluid tight seal around the drill string 12 whilst allowing the drill string to rotate about its longitudinal axis, and to be moved further down into and out of the borehole 10. Together, the well head 18 and 10 closure device 20 contain the fluid in the annulus 16. In this example, the drill string 12 extends from the closure device 20 to a driving apparatus 22 such as a top drive, and the uppermost end of the drill string 12 is connected to the outlet port of a standpipe manifold 24 which has an inlet port connected by an inlet line to a mud pump 26. A flow meter 46 - in 15 this embodiment of the invention a clamp-on active sonar meter, is mounted on the inlet line between the mud pump 26 and the standpipe manifold 24, and this provides an output signal indicative of the rate of mud flow into the drill string 12. In standard managed pressure drilling systems, the rate of fluid flow into the 20 drill string 12 is measured by counting the number of strokes of the pump 26, for example using piston stroke counter whiskers, piston stroke counter proximity sensors or pump drive shaft rpm sensors, and multiplying this by the volume of fluid displaced per stroke. These methods are all mechanical and record mechanical activity of the pump rather than measuring the fluid flow 25 directly. As such, all are of variable reliability and accuracy and are prone to failure. In contrast, an active sonar meter provides a direct, accurate and reliable measurement of the fluid flow into the drill string 12.
WO 2012/035001 PCT/EP2011/065834 10 The standard mechanical equipment for measuring the injected fluid flow rate as described above is advantageously provided in addition to the active sonar meter 46, and therefore can be used to calibrate the active sonar meter 46 prior to commencement of drilling. 5 The well head 18 includes a side port 18a which is connected to an annulus return line 28, and which provides an outlet for fluid from the annulus 16. The annulus return line 28 extends to a mud reservoir 34 via a novel back pressure system 36 which is illustrated in more detail in Figure 3. A fluid flow in provided between the pump 26 and the reservoir 34 so that the pump 26 can 10 be operated to draw mud from the reservoir 34 and pump it into the drill string 12 via the standpipe manifold 24. Referring now to Figure 3, the back pressure system 36 is configured as follows. The annulus return line 28 extends to an adjustable choke or valve 30a (hereinafter referred to as the back pressure control valve 30a) via an 15 active sonar flow meter 38 which is upstream of the back pressure control valve 30a. The active sonar flow meter 38 is a non-intrusive clump on meter which does not have any effect on the flow of fluid along, and therefore the pressure of fluid in, the annulus return line 28, and cannot increase the possibility of plugging or blocking of the annulus return line 28 with debris. 20 A first further fluid flow line 28a (hereinafter referred to as the Coriolis meter line) extends from the annulus return line 28 between the active sonar flow meter 38 and the choke 30a to a Coriolis type flow meter via an upstream filter 40. The filter 40 comprises either a mesh screen or a perforated sheet which is located at the junction between the Coriolis meter line 28a and the annulus 25 return line 28 as illustrated in Figure 4. The filter 40 is slightly domed and arranged so that the centre portion of the filter 40 extends into the Coriolis meter line 28. This is illustrated in Figure 4, although it should be appreciated WO 2012/035001 PCT/EP2011/065834 11 that this drawing is not to scale, and the degree of doming of the filter 40 is exaggerated for clarity. Coriolis flow meters are often used in drilling systems, so the construction and operation of these are well-known to those of skill in the art. Briefly, however, 5 the Coriolis meter comprises two tubes, fluid flowing into the meter being split between the two tubes, so that half flows along each tube before leaving the meter. A drive coil is provided, and this is configured such that passage of an electrical current through this causes the tubes to vibrate at their natural frequency, each in the opposite sense to the other. A magnet and coil 10 assembly called a pick-off is mounted on each tube. As each tube vibrates, each coil moves through the magnetic field produced by the magnet on the other tube, and this induces a sinusoidal voltage in each coil. When there is no fluid flow through the meter, the voltages induced in each coil are in phase. When there is fluid flow, Coriolis forces are induced causing the tubes to twist 15 in the opposite direction to each other, and this causes the voltages in the coils to be out of phase by an amount 5t which is proportional to the mass flow rate through the tubes. This amount 6t can be determined and used to provide an output signal which gives a highly accurate (up to around 0.1% of the total flow rate) value for the mass flow rate through the meter. 20 The output signal from all of the flow meters 32, 38, 46 is transmitted using standard telecommunications means to a central drilling control unit (not shown) which has a processor which is programmed to compare the rate of fluid flow into the bore hole 10 with the rate of fluid flow out of the borehole 10. If fluid is being injected into the borehole 10 at a higher rate than it is leaving 25 the borehole 10, this indicates that some fluid is being lost to the formation and a reduction in bottom hole pressure is desirable. Alternatively, if the rate of flow of fluid out of the borehole 10 is significantly higher than the rate of flow of fluid into the borehole 10, this indicates that a kick of formation fluid has entered the borehole 10, and that an increase in bottom hole pressure may be WO 2012/035001 PCT/EP2011/065834 12 desirable to stop this influx and that action needs to be taken to deal with the formation fluids already in the borehole 10. It will be appreciated that for this control mechanism to be effective, receiving accurate and reliable data from the flow meters 32, 38, 46 is critical. 5 The provision of two meters for measuring flow along the annulus return line 28 is advantageous as, if one meter is disrupted or fails, the other meter is available for monitoring the flow rate. Moreover, by virtue of using two different types of meter, the output from one meter can be compared with the output from the other for calibration purposes and to give an indication of the 10 accuracy and reliability of the meters. Both these meters only work well for measuring liquid flow rates, and the accuracy of the output of a flow meter deteriorates if there is any entrained gas in the liquid. When drilling into a formation it is quite common for some hydrocarbon gas to be present in the drilling mud. The hydrocarbon gas may 15 be released as the formation is drilled away or produced from productive fractures or reservoir sands adjacent to the borehole 10 before the drilling mud can create an effective seal and filter cake over the borehole face. Whilst the drilling mud is under pressure in the annulus 16 and the annulus return line 28, this gas is either in solution in the drilling mud or compressed to its liquid state. 20 The pressure in the annulus return line 28 downstream of the choke 30a is significantly lower than the pressure in the annulus return line 28 upstream of the choke 30a. As such, as the drilling mud exits the choke 30a, the entrained gas is depressurised, expands, and forms bubbles of gas in the liquid mud. The flow meter is positioned downstream of the choke in standard MPD 25 systems, and these gas bubbles have a detrimental effect on the accuracy of the mass flow measurements obtained from the flow meter, and can even completely disrupt the flow of data from the meter. As discussed above, the mass flow readings are used for detecting kicks or loss of mud to the formation, and so the accuracy of these readings is vital to the stability of the WO 2012/035001 PCT/EP2011/065834 13 drilling process. This problem is avoided in the present invention by positioning both the flow meters 32, 38 upstream of the choke 30a. The provision of the filter 40 is advantageous because, without it, the two tubes in the Coriolis flow meter 32 could easily become blocked with 5 particulate debris in the returning fluid, as these tubes each have a smaller cross-section sectional area than the Coriolis meter line 28a. Blocking of the Coriolis flow meter 32 could cause the fluid pressure in the system upstream of the flow meter 32 to increase to such an extent that the flow meter 32 or the piping of the Coriolis flow line 28a or annulus return line 28 is damaged or fails 10 completely. The apertures in the filter 40 are significantly smaller than the cross-section of these tubes so that any debris 42 which is sufficiently large to block the tubes is trapped by the filter 40 and prevented from entering the Coriolis meter 40, as illustrated in Figure 4. Positioning the filter 40 at the T junction between the 15 Coriolis meter line 28a and the annulus return line 28 is also advantageous as debris trapped by the filter 40 is washed off the filter 40 by fluid flowing along the annulus return line 28 and therefore the filter 40 is kept clear and does not generally become blocked. The dome shape of the filter 40 and arranging the filter 40 such that the centre portion extends into the Coriolis meter line 28 20 ensures that the filter 40 and any debris caught by the filter 40 does not impede flow of fluid along the annulus return line 28. Whilst the provision of the filter 40 minimises the risk of damage to the system because of blocking of the Coriolis flow meter 32, in this embodiment of the invention, as a further safety precaution, the system 36 is provided with a 25 pressure relief line 28b which extends from the annulus return line 28 between the active sonar meter 38 and the Coriolis meter line 28a to a main pressure relief valve 44. This pressure relief valve 44 is a standard pop off type pressure relief valve which normally substantially prevents fluid from flowing WO 2012/035001 PCT/EP2011/065834 14 along the pressure relief line 28b but which is configured to open to allow fluid to flow along the pressure relief line 28b when the pressure upstream of the valve exceeds a predetermined value. The predetermined value is typically 50 psi below the maximum operating pressure of the lowest pressure rated 5 component in the drilling system, which is usually the closure device 20. The pressure relief line 28b is also provided with a branch 28b' which extends from the pressure relief line 28b upstream of the main pressure relief valve 44 to downstream of the main pressure relief valve 44. This branch 28b' therefore provides a conduit for fluid to flow along the pressure relief line 28b', 10 by-passing the main pressure relief valve 44. In this branch line 28b' is provided an adjustable pressure relief valve 46. This valve 46 normally substantially prevents fluid from flowing along the branch line 28b', and the operation of the valve 46 is controlled by an electronic control unit which receives a pressure signal from a pressure sensor in the BHA 14, the annulus 15 16 or annulus return line 28 downstream of the pressure relief line 28b. The electronic control unit is programmed to compare this pressure signal with the desired bottom hole pressure / annulus pressure / annulus return line pressure, and to open the valve 46 if the difference is greater than a predetermined margin. In other words, the adjustable pressure relief valve 46 20 is set to open at a pressure which is greater by a predetermined margin than either the desired bottom hole pressure, annulus pressure or back pressure to be applied to the annulus 16 by the back pressure control system 36. As the desired pressure is constantly changing, the valve 46 is actively adjusted to maintain that predetermined margin whilst drilling progresses. The margin, 25 and which pressure signal is used as a basis for comparison with the set point will depend on the type of formation being drilled. For example, the adjustable pressure relief valve 46 may be set to open at a pressure margin of 50 psi above the bottom hole pressure set point. In this case, if the system is set to maintain the bottom hole pressure at 200 psi, the WO 2012/035001 PCT/EP2011/065834 15 adjustable pressure relief valve 46 will be set to open if the pressure signal from the pressure sensor in the BHA 14 indicates that the bottom hole pressure is greater than 250 psi. Both pressure relief valves 44, 46 are provided with means for communicating 5 with the main drilling control unit so that if either valve 44, 46 is activated, i.e. opens because the maximum permitted pressure was exceeded, an electronic signal is transmitted to the main drilling control unit which may then display or sound a warning to alert an operator that there is a problem with the drilling system. 10 These pressure relief valves thus protect from damage caused by excess pressure build up from blocking or plugging of any component of the back pressure control system 36 downstream of the pressure relief line 28b. The main pressure relief valve 44 primarily protects the surface MPD equipment including the closure device 20, whilst the primary role of the adjustable 15 pressure relief valve 46 is to protect the casing and formation, and to prevent the formation fracturing and drilling mud being lost to the formation. Whilst only one back pressure control valve 30a is required to facilitate managed pressure drilling, in this embodiment of the invention, a second back pressure control valve 30b is provided in an annulus return relief line 28c 20 which extends from the annulus return line 28 between the Coriolis meter line 28a and the first back pressure control valve 30a to a point on the annulus return line 28 downstream of the first back pressure control valve 30a. The second back pressure control valve 30b is normally closed so that there is no fluid flow along the annulus return relief line 28c, and the back pressure on the 25 annulus 16 is controlled solely by operation of the first back pressure control valve 30a. If the first back pressure control valve 30a fails or becomes blocked, this valve is closed, and the second back pressure control valve 30b is opened so that all the fluid flow along the annulus return line 28 passes WO 2012/035001 PCT/EP2011/065834 16 through the annulus return relief line 28c. The back pressure is then controlled by operation of the second back pressure control valve 30b. During a typical managed pressure drilling operation, the back pressure control valve 30a or 30b is used to apply a back pressure of between 300 and 5 500 psi to the annulus 16. To achieve this all the components of the drilling system, including the closure device 20 and the back pressure control system 36 are preferably pressure rated to 1500 psi drilling and 2200 psi shut in pressure. Whilst a higher pressure rated system may, of course, be used, using a lower pressure rated system is advantageous as equipment with a 10 lower pressure rating tends to be more widely available and less expensive. This also allows a standard Coriolis meter (these are generally pressure rated to 1500 to 2000 psi) to be placed upstream of the back pressure control valves 30a, 30b. Whilst the back pressure control valves 30a and 30b may be any known 15 configuration of adjustable choke or valve which is operable to restrict the flow of fluid along a conduit to a variable extent, they are advantageously air configured as illustrated in Figures 5, 6, 7a and 7b. The adjustable pressure relief valve 46 may be configured in this way also. Referring now to Figure 5, there is shown in detail a back pressure control 20 valve 30a or 30b having a valve member 48 which is mounted in a central passage of a generally cylindrical valve body 50, the valve member 48 comprising a generally spherical ball. The valve body 50 is mounted in the annulus return line 28, annulus return relief line 28c or pressure relief line 28b' so that fluid flowing along the respective line 28, 28c, 28b' has to pass through 25 the central passage of the valve body 50. The diameter of the ball 48 is greater than the internal diameter of the valve body 50, and therefore the internal surface of the valve body 50 is shaped to WO 2012/035001 PCT/EP2011/065834 17 provide a circumferential annular recess in which the ball 48 is seated. The ball 48 is connected to an actuator stem 52 which extends through an aperture provided in the valve body 50 generally perpendicular to the longitudinal axis of the central passage of the valve body 50 into an actuator housing 54. The 5 actuator stem 52 is a generally cylindrical rod which is rotatable about its longitudinal axis within the actuator housing 54, and which has a pinion section providing radial teeth extending over at least a portion of the length of the actuator stem 52. Referring now to Figure 6, four pistons 56a, 56b, 56c, 56d are mounted in the 10 actuator housing 54, the actuator housing 54 being shaped around the pistons 56a, 56b, 56c, 56d so that each piston 56a, 56b, 56c, 56d engages with the actuator housing 54 to form a control chamber 58a, 58b, 58c, 58d within the actuator housing 54. Each piston 56a, 56b, 56c, 56d is provided with a seal, in this example an O-ring, which engages with the actuator housing 54 to provide 15 a substantially fluid tight seal between the piston 56a, 56b, 56c, 56d and the housing 54, whilst allowing reciprocating movement of the piston 56a, 56b, 56c, 56d in the housing 54. The pistons 56a, 56b, 56c, 56d are arranged around the actuator stem 52 to form two pairs, the pistons in each pair being generally parallel to one another and perpendicular to the pistons in the other 20 pair. Four apertures 60a 60b, 60c, 60d extend through the actuator housing 54 each into one of the control chambers 58a, 58b, 58c, 58d, and a further aperture 61 extends through the actuator housing 54 into the remaining, central, volume of the housing 54 in which the actuator rod 52 is located. Each piston 56a, 56b, 56c, 56d has an actuator rod 62a, 62b, 62c, 62d which 25 extends generally perpendicular to the plane of the piston 56a, 56b, 56c, 56d towards the actuator stem 52. Each actuator rod 62a, 62b, 62c, 62d is provided with teeth which engage with the teeth of the pinion section of the actuator rod 52 to form a rack and pinion arrangement. Translational WO 2012/035001 PCT/EP2011/065834 18 movement of the pistons 56a, 56b, 56c, 56d thus causes the actuator rod 52 and ball 48 to rotate. An electrical or electronic rotation sensor 64, is, in this embodiment of the invention, mounted on the free end of the actuator stem 52 and transmits to 5 the central drilling control unit an output signal indicative of the rotational orientation of the actuator stem 52 and ball 48 relative to the actuator housing 54 and valve body 50. The ball 48 is provided with a central passage 48a which is best illustrated in Figures 7a and 7b. The central passage 48a extends through the ball 48 and 10 has a longitudinal axis B which lies in the plane in which the longitudinal axis of the valve body 50 lies. When viewed in transverse cross-section, i.e. in section perpendicular to its longitudinal axis B, the central passage 48a has the shape of a sector of a circle, as best illustrated in Figure 7a, i.e. has three major surfaces - one of which forms an arc and the other two of which are 15 generally flat and inclined at an angle of around 452 to one another. As such, the central passage 48a has a short side where the two generally flat surfaces meet and a tall side where the arc surface extends between the two generally flat surfaces. The ball 48 is rotatable through 902 between a fully closed position in which 20 the longitudinal axis B of the central passage 48a is perpendicular to the longitudinal axis of the valve body 50, and a fully open position in which the longitudinal axis B of the central passage 48a coincides with the longitudinal axis of the valve body 50, as illustrated in Figures 6 and 7a. When the valve is in the fully open position, the entire cross-section of the central passage 48a is 25 exposed to fluid in the valve body 50, and fluid flow through the valve body 50 is substantially unimpeded by the ball 48.
WO 2012/035001 PCT/EP2011/065834 19 Between the fully open and fully closed position, there are a plurality of partially open positions in which a varying proportion of the cross-section of the central passage 48a is exposed to fluid in the valve body 50, as illustrated in Figure 7b. When the valve 30a is in a partially open position, flow of fluid 5 along the valve body 50 is permitted, but is restricted by the ball 48. The extent to which fluid flow is restricted depends on the proportion of the central passage 48a which is exposed to the fluid flow - the closer the ball 48 is to the fully open position, i.e. the greater the exposed area, the less the restriction, and the closer the ball 48 is to the fully closed position, i.e. the smaller the 10 exposed area, the greater the restriction. Therefore the back pressure on the annulus 16 can be varied by varying the rotational position of the ball 48. The ball 48 is oriented in the valve body 50 such that when the valve moves from the fully closed position to the fully open position, the short side of the central passage 48a is exposed first to the fluid in the valve body 50, the tall 15 side of the central passage 48a being last to be exposed. The height of the passage 48a exposed to fluid in the valve body 50 thus increases as the ball 48 is rotated to the fully open position. The central passage in a conventional ball valve is generally circular in cross sectional area. The use of a central passage 48a with a sector shaped cross 20 section is advantageous as this ensures that there is a generally linear relationship between the angular orientation of the ball 48 and the degree of restriction of fluid flow along the valve body 50 over at least a substantial proportion of the range of movement of the ball 48. This means that it may be possible to control the back pressure applied to the annulus 16 to a higher 25 degree of accuracy than in prior art managed pressure drilling systems. The use of a ball valve is also advantageous because when the valve 30a, 30b is in the fully open position, the cross-sectional area available for fluid flow along the valve body 50 is substantially the same as the flow area along the WO 2012/035001 PCT/EP2011/065834 20 flow line into the valve 30a, 30b. This means that if debris enters the valve 30a, 30b and blocks the central passage 48a of the ball 48 when the valve 30a, 30b is in a partially open position, the valve 30a, 30b can be unblocked and the debris flushed away by moving the ball 48 to the fully open position. 5 Whilst the valve 30a, 30b can be hydraulically actuated, preferably it is pneumatically operated, in this example using compressed air. The apertures 60a, 60b, 60c and 60d in the actuator housing 54 are connected to a compressed air reservoir and a conventional pneumatic control valve (not shown) is provided to control fluid of compressed air to the chambers 58a, 10 58b, 58c, 58d. Flow of pressurised fluid into the chambers 58a, 58b, 58c, 58d causes translational movement of the pistons 56a, 56b, 56c, 56d towards the actuator stem 52, which, by virtue of the engagement of the rods 62a, 62b, 62c, 62d with the pinion section of the actuator stem 52 causes the ball 48 to rotate towards the fully closed position. 15 A further aperture 61 is provided in the actuator housing 54, and this aperture extends into the central space in the housing 54 which is enclosed by the pistons 56a, 56b, 56c, 56d. Flow of pressurised fluid through the further aperture 61 into this central space causes translational movement of the pistons 56a, 56b, 56c, 56d away from the actuator stem 52, which, by virtue of 20 the engagement of the rods 62a, 62b, 62c, 62d with the pinion section of the actuator stem 52 causes the ball 48 to rotate towards the fully open position. The pneumatic control valve is electrically operated via the central drilling control unit which receives an input signal indicative of the fluid pressure at the bottom of the borehole 10 from a pressure sensor in the BHA 14. The central 25 drilling control unit then uses standard MPD control algorithms to calculate the desired bottom hole pressure, and compares this with the actual bottom hole pressure.
WO 2012/035001 PCT/EP2011/065834 21 If the bottom hole pressure is less than desired, the pneumatic control valve operates to allow compressed air flow to the chambers 58a, 58b, 58c, 58d. This causes the pistons 56a, 56b, 56c, 56d to move towards the actuator stem 52, and to rotate the ball 48 towards the fully closed position so that the 5 restriction of fluid flow along the valve body 50 increases, and the back pressure applied to the annulus 16 increases. When the measured bottom hole pressure reaches the desired value, the pneumatic control valve operates to stop flow of fluid into or out of the chambers 58a, 58b, 58c, 58d, and hence to stop any further movement of the pistons 56a, 56b, 56c, 56d. 10 Similarly, if the bottom hole pressure is greater than desired, the pneumatic control valve operates to supply compressed air to aperture 61 to cause the pistons 56a, 56b, 56c, 56d to move away from the actuator stem 52, and to rotate the ball 48 towards the fully open position so that the restriction of fluid flow along the valve body 50 decreases, and the back pressure applied to the 15 annulus 16 decreases. When the measured bottom hole pressure reaches the desired value, the pneumatic control valve operates to stop any further movement of the pistons 56a, 56b, 56c, 56d. Actuating the valve pneumatically, rather than using hydraulic fluid, is advantageous as it increases the speed of operation of the valve. This is 20 further increases by having a valve member which is rotatable between the open and closed positions, and the use of a rack-and-pinion arrangement to rotate the valve member. Whilst the valve could be actuated using a single piston, the provision of a plurality of pistons (in this example four) is advantageous as it increases the torque available to rotate the ball 48 without 25 having a detrimental effect on the speed of operation of the valve. The back pressure control system 36 also includes a three way diverter valve 66 with an inlet 66a connected to the annulus return line 28 downstream of the back pressure control valves 30a, 30b, a first outlet 66b connected to a mud WO 2012/035001 PCT/EP2011/065834 22 gas separator 68 and a second outlet 66c connected to a shaker system 70. The shaker system is of conventional design and is operable to remove any solid matter from the returned drilling mud, whilst the mud gas separator removes any entrained gases. The pressure relief line 28b extends from the 5 pressure relief valves 44, 46 to a further inlet of the mud gas separator, and an outlet of the mud gas separator is also connected to the shaker system 70. The shaker system has an outlet which is connected to the mud reservoir 34. The diverter valve 66 has a valve member which is movable between a first position in which the valve inlet 66a is connected to the first outlet 66b and a 10 second position in which the valve inlet 66a is connected to the second outlet 66c. The diverter valve 66 is configured such that fluid can always flow from the inlet 66a to one of the outlets 66b, 66c, i.e. the valve 66 can never be closed. The diverter valve 66 is provided with an electrical actuator, which may be operated remotely, for example via the central drilling control unit. 15 In normal use, the valve 66 is left in the first position, so that the returned drilling fluid (mud, cuttings and any other well bore fluids) passes through the mud gas separator 68 and the shaker system 70 before returning to the mud reservoir 34. The valve 66 may, however, be operated to move the valve member to the second position, to divert returning drilling fluid directly to the 20 shaker system, for example if a large amount of debris is expected as a result of drilling out a casing shoe float system. The disclosed drilling system can be used for managed pressure drilling with hydrostatically underbalanced drilling fluid weight and a dynamically overbalanced bottom hole pressure, for example where there is concern that 25 the bottom hole pressure might exceed the fracture gradient of the formation 11 because the fracture gradient is unknown or there is a risk of crossing over a fault line or into another zone or lithology. When the system is used in such a way, the density of mud is selected such that the mud weight provides a WO 2012/035001 PCT/EP2011/065834 23 static pressure which is lower than the pressure of fluid in the formation 11 (the formation pressure), and the bottom hole pressure is increased by the frictional effects of circulating mud during drilling and the operation of one of the back pressure control valves 30a, 30b to restrict fluid flow along the annulus return 5 line 28 and therefore to induce a back pressure on the annulus 16, so that the bottom hole pressure is always higher than the formation pressure and no formation fluids are allowed into the borehole 10, at least during drilling. This drilling system can also be used for managed pressure drilling with a hydrostatically overbalanced drilling fluid weight. When the system is used in 10 this way, the mud density is selected such that the mud weight provides a static pressure which is greater than the formation pressure. Thus, the well is overbalanced and the bottom hole pressure is always higher than the formation even when drilling is not in progress. Finally, this system can be used for pressurised mud cap drilling in which a 15 heavy density mud cap is circulated into the top portion of the borehole and a lighter density fluid, usually sea water, is circulated in to the well bore below the mud cap. The back pressure system 36 is used to maintain the bottom hole pressure above the fracture gradient of the formation 11 so that the lighter density fluid is injected into the formation and the formation fluids are 20 completely contained in the formation whilst drilling is in progress. When used in this specification and claims, the terms "comprises" and "comprising" and variations thereof mean that the specified features, steps or integers are included. The terms are not to be interpreted to exclude the presence of other features, steps or components. 25 The features disclosed in the foregoing description, or the following claims, or the accompanying drawings, expressed in their specific forms or in terms of a means for performing the disclosed function, or a method or process for attaining the disclosed result, as appropriate, may, separately, or in any WO 2012/035001 PCT/EP2011/065834 24 combination of such features, be utilised for realising the invention in diverse forms thereof.
Claims (25)
1. A drilling system including a drill string which extends into a borehole, and a well closure system which contains fluid in the annular space in the borehole around the drill string, the well closure system having a side port 5 whereby controlled flow of fluid out of the annular space in the borehole around the drill string is permitted, the side port being connected to fluid return line which extends from the side port to a fluid reservoir, there being provided in the fluid return line a valve which is operable to restrict flow of fluid along the fluid return line to variable extent, and a flow meter operable to measure the 10 rate of flow of fluid along the fluid return line, the flow meter being located between the valve and the side port, wherein a filter is provided between the flow meter and the side port, the filter including a plurality of apertures which have a smaller cross-sectional area than the smallest fluid flow lines in the flow meter. 15
2. A drilling system according to claim 1 wherein the flow meter is a Coriolis flow meter.
3. A drilling system according to claim 1 or 2 wherein the flow meter is located in a branch line off the fluid return line which extends between a first portion of the fluid return line and a second portion of the fluid return line, the 20 first portion being located between the side port and the second portion.
4. A drilling system according to claim 3 wherein the filter is located at or adjacent to the junction between the branch line and the first portion of the fluid return line.
5. A drilling system according to claim 4 wherein the filter has an edge or 25 edges which are located at the junction between the branch line and the first portion of the fluid return line, and a central portion which extends into the branch line.
6. A drilling system according to claim 2 wherein an active sonar flow meter is provided to measure the rate of fluid flow along the fluid return line. WO 2012/035001 PCT/EP2011/065834 26
7. A drilling system according to claim 6 wherein the active sonar flow meter is located between the side port and the Coriolis flow meter.
8. A drilling system according to claim 7 wherein the active sonar flow meter is a clamp-on meter. 5
9. A drilling system according to any preceding claim wherein an inlet line extends into the drill string from a pump, and a second active sonar flow meter is provided to measure the rate of fluid flow along the inlet line.
10. A drilling system according to claim 9 wherein the second active sonar flow meter is a clamp-on meter. 10
11. A drilling system including a drill string which extends into a borehole, and a well closure system which contains fluid in the annular space in the borehole around the drill string, the well closure system having a side port whereby controlled flow of fluid out of the annular space in the borehole around the drill string is permitted, the side port being connected to fluid return 15 line which extends from the side port to a fluid reservoir, there being provided in the fluid return line a valve which includes a valve member which is rotatable to restrict flow of fluid along the fluid return line to variable extent.
12. A drilling system according to claim 11 wherein the valve includes a valve body, the valve body having a passage with a longitudinal axis which 20 extends from a valve inlet to a valve outlet, the passage forming part of the fluid return line, and wherein the valve member is a generally spherical ball which is mounted in the passage of the valve body.
13. A drilling system according to claim 12 wherein the valve member includes a central passage which extends through the ball and which has a 25 longitudinal axis, the valve member being rotatable between a closed position in which the longitudinal axis of the central passage extends at around 902 to the longitudinal axis of the passage in the valve body, and an open position in which the longitudinal axis of the central passage is generally parallel to the longitudinal axis of the passage in the valve body. WO 2012/035001 PCT/EP2011/065834 27
14. A drilling system according to claim 13 wherein the cross-section of the central passage perpendicular to its longitudinal axis tapers from a short side to a tall side, the height of the central passage increasing generally linearly from the short side to the tall side. 5
15. A drilling system according to claim 14 wherein the ball is arranged in the valve body such that when rotated from the closed position to the open position, the short side of the central passage is first to open into the passage of the valve body.
16. A drilling system according to claim 14 or 15 wherein the cross-section 10 of the central passage perpendicular to its longitudinal axis has the shape of a sector of a circle.
17. A drilling system according to any preceding claim wherein the valve is provided with an actuator stem, rotation of which about its longitudinal axis causes rotation of the valve member between the open position and the closed 15 position.
18. A drilling system according to claim 17 wherein the actuator stem has a pinion portion with a plurality of radial teeth, and the valve is provided with at least one actuator piston with a toothed rod which engages with the pinion portion of the actuator stem so that translational movement of the piston 20 causes rotation of the actuator stem and valve member.
19. A drilling system according to claim 18 wherein the valve is provided with four actuator pistons each with a toothed rod which engages with the pinion portion of the actuator stem.
20. A drilling system according to claim 18 or 19 wherein the or each piston 25 is mounted in an actuator housing and engages with the actuator housing so that the actuator housing and piston enclose a control chamber, the actuator housing being provided with a conduit whereby fluid flow into the control chamber. WO 2012/035001 PCT/EP2011/065834 28
21. A valve including a valve member and a valve body having a passage with a longitudinal axis which extends from a valve inlet to a valve outlet, wherein the valve member is a generally spherical ball which is mounted in the passage of the valve body and includes a central passage which extends 5 through the ball and which has a longitudinal axis, the valve member being rotatable between a closed position in which the longitudinal axis of the central passage extends at around 902 to the longitudinal axis of the passage in the valve body, and an open position in which the longitudinal axis of the central passage is generally parallel to the longitudinal axis of the passage in the 10 valve body, wherein the cross-section of the central passage perpendicular to its longitudinal axis tapers from a short side to a tall side, the height of the central passage increasing generally linearly from the short side to the tall side.
22. A drilling system including a drill string which extends into a borehole, 15 and a well closure system which contains fluid in the annular space in the borehole around the drill string, the well closure system having a side port whereby controlled flow of fluid out of the annular space in the borehole around the drill string is permitted, the side port being connected to fluid return line which extends from the side port to a fluid reservoir, the drilling system 20 also including a valve, the valve having an inlet port which is connected to the fluid return line, a first outlet port which is connected to a gas separator apparatus for separating entrained gas from a liquid, a second outlet port which is connected to a solid separator apparatus for separating solid particles from a liquid, wherein the valve is operable to selectively permit flow of fluid 25 from the inlet port to either the first outlet port or the second outlet port whilst never preventing flow of fluid from the inlet port to both of the outlet ports.
23. A drilling system according to claim 22 wherein the gas separator has an outlet for liquid which is connected to an inlet of the solid separator.
24. A drilling system according to claim 22 or 23 wherein the solid separator 30 has an outlet for liquid which is connected to the reservoir. WO 2012/035001 PCT/EP2011/065834 29
25. A drilling system according to any preceding claim wherein the solid separator comprises at least one shaker.
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| GB1015408.6 | 2010-09-15 | ||
| GB1015408.6A GB2483671B (en) | 2010-09-15 | 2010-09-15 | Drilling system |
| PCT/EP2011/065834 WO2012035001A2 (en) | 2010-09-15 | 2011-09-13 | Drilling apparatus |
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| AU2011303956A1 true AU2011303956A1 (en) | 2013-03-28 |
| AU2011303956B2 AU2011303956B2 (en) | 2015-11-26 |
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|---|---|---|---|
| AU2011303956A Active AU2011303956B2 (en) | 2010-09-15 | 2011-09-13 | Managed pressure drilling apparatus |
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| US (1) | US9388650B2 (en) |
| EP (1) | EP2616629B8 (en) |
| CN (1) | CN103180541A (en) |
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| SA (1) | SA111320753B1 (en) |
| SG (1) | SG188961A1 (en) |
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Families Citing this family (41)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US9163736B2 (en) * | 2011-03-31 | 2015-10-20 | National Oilwell Varco Norway As | Method and device for preventing a mud relief valve from incorrect opening |
| US9328575B2 (en) | 2012-01-31 | 2016-05-03 | Weatherford Technology Holdings, Llc | Dual gradient managed pressure drilling |
| CN103470201B (en) * | 2012-06-07 | 2017-05-10 | 通用电气公司 | Fluid control system |
| WO2014062818A2 (en) * | 2012-10-16 | 2014-04-24 | Expro Meters, Inc. | Systems and methods for managing hydrocarbon material producing wellsites using clamp-on flow meters |
| RU2637533C2 (en) * | 2012-12-31 | 2017-12-05 | Хэллибертон Энерджи Сервисиз, Инк. | Control of drill fluid pressure in drill fluid circulation system |
| US10533406B2 (en) | 2013-03-14 | 2020-01-14 | Schlumberger Technology Corporation | Systems and methods for pairing system pumps with fluid flow in a fracturing structure |
| US9534604B2 (en) * | 2013-03-14 | 2017-01-03 | Schlumberger Technology Corporation | System and method of controlling manifold fluid flow |
| US9664003B2 (en) | 2013-08-14 | 2017-05-30 | Canrig Drilling Technology Ltd. | Non-stop driller manifold and methods |
| US10000981B2 (en) | 2014-03-21 | 2018-06-19 | Canrig Drilling Technologies Ltd. | Back pressure control system |
| CN104196473B (en) * | 2014-08-13 | 2016-08-17 | 中国石油天然气集团公司 | Controlled pressure drilling private filter |
| US10094185B2 (en) * | 2014-09-19 | 2018-10-09 | Weatherford Technology Holdings, Llc | Coriolis flow meter having flow tube with equalized pressure differential |
| CN104405316B (en) * | 2014-09-28 | 2017-01-25 | 中石化胜利石油工程有限公司钻井工艺研究院 | System and method for detecting density and mass flow of dual-pressure drilling fluid |
| GB2530572B (en) * | 2014-09-29 | 2021-03-10 | Equinor Energy As | Estimating cuttings removal |
| SG11201704024SA (en) | 2014-11-17 | 2017-06-29 | Weatherford Tech Holdings Llc | Controlled pressure drilling system with flow measurement and well control |
| WO2016118150A1 (en) * | 2015-01-23 | 2016-07-28 | Halliburton Energy Services, Inc. | Pressure relief valve set point systems |
| US11486243B2 (en) * | 2016-08-04 | 2022-11-01 | Baker Hughes Esp, Inc. | ESP gas slug avoidance system |
| CN107201884B (en) * | 2017-07-10 | 2023-03-24 | 中国石油天然气集团有限公司 | Flow distribution control device of fine pressure control drilling riser and back pressure compensation method thereof |
| US10883357B1 (en) | 2018-01-24 | 2021-01-05 | ADS Services LLC | Autonomous drilling pressure control system |
| CN109597082B (en) * | 2018-03-30 | 2024-07-02 | 重庆奉节水电开发有限公司 | Telescopic driving device for water supply pipeline blockage detection device |
| CN109339766A (en) * | 2018-12-12 | 2019-02-15 | 重庆科技学院 | Comprehensive Experiment System for Dynamic Circulation Simulation of Gas-filled Drilling |
| US11613946B1 (en) * | 2019-10-31 | 2023-03-28 | Pruitt Tool & Supply Co. | Resettable pressure relief valve system and method for use when drilling with a rotating control device |
| CN111022038B (en) * | 2019-11-22 | 2023-04-25 | 中国石油天然气股份有限公司 | Underground visual sleeve breaking water point detection method for nitrogen gas lift |
| CN113123740B (en) * | 2019-12-30 | 2024-09-17 | 四川宏华石油设备有限公司 | Drilling fluid cooling system |
| GB2591309B (en) * | 2020-01-23 | 2024-07-10 | Ntdrill Holdings Llc | Drilling choke with matched actuator |
| US11401771B2 (en) | 2020-04-21 | 2022-08-02 | Schlumberger Technology Corporation | Rotating control device systems and methods |
| US11187056B1 (en) | 2020-05-11 | 2021-11-30 | Schlumberger Technology Corporation | Rotating control device system |
| US11274517B2 (en) | 2020-05-28 | 2022-03-15 | Schlumberger Technology Corporation | Rotating control device system with rams |
| US11732543B2 (en) | 2020-08-25 | 2023-08-22 | Schlumberger Technology Corporation | Rotating control device systems and methods |
| DE102021200100A1 (en) * | 2021-01-08 | 2022-07-14 | Robert Bosch Gesellschaft mit beschränkter Haftung | Hydraulic gear unit, especially for deep sea applications |
| US11702896B2 (en) * | 2021-03-05 | 2023-07-18 | Weatherford Technology Holdings, Llc | Flow measurement apparatus and associated systems and methods |
| CN112983350B (en) * | 2021-04-14 | 2022-01-14 | 盐城佰信石油机械有限公司 | Wellhead back pressure regulation and control method and device |
| GB2618042B (en) * | 2021-04-22 | 2025-05-21 | Halliburton Energy Services Inc | Fluid flow control system employing gravity driven floats and a valve |
| US11643889B1 (en) * | 2021-05-20 | 2023-05-09 | Pruitt Tool & Supply Co. | Debris catch for managed pressure drilling |
| US11661805B2 (en) | 2021-08-02 | 2023-05-30 | Weatherford Technology Holdings, Llc | Real time flow rate and rheology measurement |
| US12013273B2 (en) | 2022-02-23 | 2024-06-18 | Saudi Arabian Oil Company | Drilling mud flow metering system and method |
| CN115522915B (en) * | 2022-10-25 | 2024-11-08 | 中国石油大学(华东) | A downhole gas intrusion detection device and working method during rotary drilling based on gas-liquid two-phase |
| US12222268B1 (en) | 2023-07-20 | 2025-02-11 | Weatherford Technology Holdings, Llc | Non-intrusive rheometer for use in well operations |
| US12286848B2 (en) | 2023-08-24 | 2025-04-29 | Saudi Arabian Oil Company | System and method to detect and measure fluid flow in the return line during drilling activities |
| CN116877057B (en) * | 2023-09-05 | 2023-11-21 | 大庆信辰油田技术服务有限公司 | Oil-gas well optical fiber monitoring equipment and method |
| US12366129B2 (en) | 2023-09-12 | 2025-07-22 | Saudi Arabian Oil Company | Spacer spool with return line to connect rig blow out preventor to managed pressure drilling choke |
| CN119572754B (en) * | 2025-01-24 | 2025-10-03 | 中石化西南石油工程有限公司 | A novel test valve actuator and its use method |
Family Cites Families (28)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3338319A (en) * | 1965-07-29 | 1967-08-29 | Bass Brothers Entpr Inc | Apparatus for maintaining balanced mud circulation to prevent blowouts |
| GB1210858A (en) * | 1968-08-07 | 1970-11-04 | Saunders Valve Co Ltd | Improvements in fluid flow control devices |
| DE3065879D1 (en) * | 1979-07-14 | 1984-01-19 | Bunyard Alan D | Piston-rack rotary actuator |
| CN85100330B (en) * | 1985-04-01 | 1988-03-23 | 辽阳水表厂 | Dynamic pressure flow dividing flowmeter |
| US4953618A (en) * | 1989-01-12 | 1990-09-04 | Haliburton Company | Injection manifold and method |
| BR9706984A (en) * | 1996-01-17 | 1999-07-20 | Micro Motion Inc | Deviation type coriolis flow meter |
| US6263981B1 (en) | 1997-09-25 | 2001-07-24 | Shell Offshore Inc. | Deepwater drill string shut-off valve system and method for controlling mud circulation |
| US6209443B1 (en) * | 1998-07-09 | 2001-04-03 | Hiflex Technologies Inc. | Low pressure actuator |
| US6413297B1 (en) * | 2000-07-27 | 2002-07-02 | Northland Energy Corporation | Method and apparatus for treating pressurized drilling fluid returns from a well |
| US20020112888A1 (en) | 2000-12-18 | 2002-08-22 | Christian Leuchtenberg | Drilling system and method |
| GB2376080B (en) | 2001-05-30 | 2004-08-04 | Micro Motion Inc | Flowmeter proving device |
| US6575244B2 (en) | 2001-07-31 | 2003-06-10 | M-I L.L.C. | System for controlling the operating pressures within a subterranean borehole |
| US7185719B2 (en) | 2002-02-20 | 2007-03-06 | Shell Oil Company | Dynamic annular pressure control apparatus and method |
| OA12776A (en) * | 2002-02-20 | 2006-07-06 | Shell Int Research | Dynamic annular pressure control apparatus and method. |
| US6814142B2 (en) * | 2002-10-04 | 2004-11-09 | Halliburton Energy Services, Inc. | Well control using pressure while drilling measurements |
| WO2005017308A1 (en) * | 2003-08-19 | 2005-02-24 | Shell Internationale Research Maatschappij B.V. | Drilling system and method |
| US7111643B2 (en) * | 2005-01-26 | 2006-09-26 | Invensys Building Systems, Inc. | Flow characterization in a flowpath |
| US7603916B2 (en) * | 2005-07-07 | 2009-10-20 | Expro Meters, Inc. | Wet gas metering using a differential pressure and a sonar based flow meter |
| GB0519119D0 (en) * | 2005-09-20 | 2005-10-26 | Colquhoun Ross | Apparatus and method |
| WO2007081711A2 (en) | 2006-01-05 | 2007-07-19 | At Balance Americas Llc | Method for determining formation fluid entry into or drilling fluid loss from a borehole using a dynamic annular pressure control system |
| WO2007124330A2 (en) * | 2006-04-20 | 2007-11-01 | At Balance Americas Llc | Pressure safety system for use with a dynamic annular pressure control system |
| GB2456438B (en) * | 2006-10-23 | 2011-01-12 | Mi Llc | Method and apparatus for controlling bottom hole pressure in a subterranean formation during rig pump operation |
| ATE491862T1 (en) * | 2007-12-27 | 2011-01-15 | Prad Res & Dev Nv | REAL-TIME MEASUREMENT OF RESERVOIR FLUID PROPERTIES |
| US8061186B2 (en) * | 2008-03-26 | 2011-11-22 | Expro Meters, Inc. | System and method for providing a compositional measurement of a mixture having entrained gas |
| GB0905633D0 (en) * | 2009-04-01 | 2009-05-13 | Managed Pressure Operations Ll | Apparatus for and method of drilling a subterranean borehole |
| EP2435799B1 (en) * | 2009-05-26 | 2019-09-18 | Expro Meters, Inc. | Method and apparatus for monitoring multiphase fluid flow |
| EP2499328B1 (en) | 2009-11-10 | 2014-03-19 | Ocean Riser Systems AS | System and method for drilling a subsea well |
| EP2551648A1 (en) * | 2011-07-29 | 2013-01-30 | Services Pétroliers Schlumberger | A multiphase flowmeter and a correction method for such a multiphase flowmeter |
-
2010
- 2010-09-15 GB GB1015408.6A patent/GB2483671B/en active Active
-
2011
- 2011-09-13 US US13/822,914 patent/US9388650B2/en active Active
- 2011-09-13 EP EP11778537.8A patent/EP2616629B8/en active Active
- 2011-09-13 AU AU2011303956A patent/AU2011303956B2/en active Active
- 2011-09-13 SG SG2013018130A patent/SG188961A1/en unknown
- 2011-09-13 MX MX2013002970A patent/MX2013002970A/en not_active Application Discontinuation
- 2011-09-13 WO PCT/EP2011/065834 patent/WO2012035001A2/en not_active Ceased
- 2011-09-13 BR BR112013005910A patent/BR112013005910A2/en not_active IP Right Cessation
- 2011-09-13 CN CN2011800444327A patent/CN103180541A/en active Pending
- 2011-09-13 CA CA2811237A patent/CA2811237A1/en not_active Abandoned
- 2011-09-14 SA SA111320753A patent/SA111320753B1/en unknown
Also Published As
| Publication number | Publication date |
|---|---|
| GB201015408D0 (en) | 2010-10-27 |
| GB2483671B (en) | 2016-04-13 |
| SG188961A1 (en) | 2013-05-31 |
| WO2012035001A3 (en) | 2012-06-14 |
| AU2011303956B2 (en) | 2015-11-26 |
| EP2616629B1 (en) | 2017-02-01 |
| US9388650B2 (en) | 2016-07-12 |
| SA111320753B1 (en) | 2015-04-21 |
| WO2012035001A2 (en) | 2012-03-22 |
| MX2013002970A (en) | 2013-05-09 |
| CA2811237A1 (en) | 2012-03-22 |
| BR112013005910A2 (en) | 2017-11-14 |
| EP2616629B8 (en) | 2017-04-12 |
| EP2616629A2 (en) | 2013-07-24 |
| CN103180541A (en) | 2013-06-26 |
| GB2483671A (en) | 2012-03-21 |
| US20130299240A1 (en) | 2013-11-14 |
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| Date | Code | Title | Description |
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| FGA | Letters patent sealed or granted (standard patent) | ||
| PC | Assignment registered |
Owner name: GRANT PRIDECO, INC. Free format text: FORMER OWNER(S): MANAGED PRESSURE OPERATIONS PTE. LTD. |